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Updated: Apr 13, 2026

Author Spotlight: Revolutionizing Microfluidics Through Microchannel Fabrication on Nanopaper
Published on: October 6, 2023
Permeable Janus cellulose electronics with an intrinsic rear filter enabled by laser-induced graphitization for
Ruya Shi1, Junning Qian1, Wing Cheung Mak1
1Department of Biomedical Engineering, The Chinese University of Hong Kong, Shatin, New Territories, Hong Kong, China.
None:
Integrating permeable electronics with microfluidics is an emerging strategy to improve the fluid-to-sensor interface in wearable biosensors, while achieving a reliable sample-sensor interface remains challenging. Here, we present an advanced permeable Janus cellulose electronic (PJCE) combining cellulose-derived laser-induced graphene (cLIG) electrodes with an intrinsic rear filter. PJCE is fabricated via a thickness-dependent laser-induced graphitization process, in which the top cellulose layer is graphitized to form the cLIG sensing electrode, while the underlying cellulose is preserved as a rear filter for sample transport and particulate contaminants removal. The cellulose matrix further enables loading of Pt2+ precursor to achieve one-step in-situ formation of cLIG-PtNPs with enhanced electrochemical performance. The optimized cLIG-Pt-10 electrode and glucose oxidase (GOx) functionalized GOx-cLIG-Pt-10 electrode exhibit high sensitivities for H2O2 (289.03 μA mM-1 cm-2) and glucose (11.89 μA mM-1 cm-2) detection, respectively. We further applied the PJCE biosensor with the rear filter atop ex vivo pig skin coated with cosmetics for glucose detection, showing minimal signal drift of ∼2-9%, benefiting from its rear filter blocking contaminants and preventing direct skin contact. We further demonstrated an origami PJCE with a 3D fluidic design that enables vertical sample transport for glucose sensing and lateral flow to a pH sensor for multimodal detection. With low-cost materials, high conformability and facile fabrication, PJCE offers an economic and robust solution for next-generation wearable biosensors.
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